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细胞复杂性的分形形态测量法

Fractal morphometry of cell complexity.

作者信息

Losa Gabriele A

机构信息

Institute for Scientific Interdisciplinary Studies, Via F. Rusca 1, PO. Box 1132, CH-6601 Locarno, Switzerland.

出版信息

Riv Biol. 2002 May-Aug;95(2):239-58.

Abstract

Irregularity and self-similarity under scale changes are the main attributes of the morphological complexity of both normal and abnormal cells and tissues. In other words, the shape of a self-similar object does not change when the scale of measurement changes, because each part of it looks similar to the original object. However, the size and geometrical parameters of an irregular object do differ when it is examined at increasing resolution, which reveals more details. Significant progress has been made over the past three decades in understanding how irregular shapes and structures in the physical and biological sciences can be analysed. Dominant influences have been the discovery of a new practical geometry of Nature, now known as fractal geometry, and the continuous improvements in computation capabilities. Unlike conventional Euclidean geometry, which was developed to describe regular and ideal geometrical shapes which are practically unknown in nature, fractal geometry can be used to measure the fractal dimension, contour length, surface area and other dimension parameters of almost all irregular and complex biological tissues. We have used selected examples to illustrate the application of the fractal principle to measuring irregular and complex membrane ultrastructures of cells at specific functional and pathological stage.

摘要

在尺度变化下的不规则性和自相似性是正常和异常细胞及组织形态复杂性的主要特征。换句话说,自相似物体的形状在测量尺度变化时不会改变,因为其每个部分看起来都与原始物体相似。然而,当以越来越高的分辨率检查不规则物体时,其大小和几何参数确实会有所不同,这会揭示更多细节。在过去三十年里,在理解如何分析物理和生物科学中的不规则形状和结构方面取得了重大进展。主要的影响因素包括发现了一种新的自然实用几何学,即现在所知的分形几何学,以及计算能力的不断提高。与传统欧几里得几何学不同,传统欧几里得几何学是为描述自然界中几乎不存在的规则和理想几何形状而发展起来的,分形几何学可用于测量几乎所有不规则和复杂生物组织的分形维数、轮廓长度、表面积及其他维数参数。我们已通过选定的例子来说明分形原理在测量特定功能和病理阶段细胞的不规则和复杂膜超微结构中的应用。

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